[Technical field]
[0001] The present invention relates to a greenware material for producing a base for ceramic
ware including sanitary ware, and more particularly to a greenware material capable
of producing ceramic ware having a complex or unique shape.
[Background Art]
[0002] High design quality has been recently required for ceramic products such as sanitary
ware, and there is a demand for greenware materials that can stably realize complex
or distinctive shapes with high quality. The shape of the final ceramic product is
affected not only by the deformation of the greenware material during firing, but
also by the difficulty of deformation during a molding process, so there is a demand
for greenware materials that can give stable and good shapes throughout an entire
manufacturing process. In addition, from the viewpoint of energy efficiency, it is
desirable for the greenware material to be able to be fired at a lower temperature
than before. Furthermore, from the viewpoint of sourcing raw materials for greenware
materials, if a good greenware material could be realized with respect to contents
of raw material elements that are not limited by region, it would be advantageous
for the global production of heavy ceramics.
[0003] As greenware materials for producing ceramics such as sanitary ware, for example,
stone-based raw materials such as pottery stone that forms the skeleton of the ceramics,
clays that impart plasticity during molding, and feldspars that act as melting agents
during firing are generally crushed and mixed for use. In order to realize various
performance and properties required for the greenware material, not only is the composition
adjusted, but also it has been proposed to crush and mix multiple raw materials individually.
[0004] For example,
CN112094100A (PLT 1) discloses that a plurality of raw materials are divided into two different
groups in consideration of characteristics of each raw material, the particle size
of each group is controlled, and the obtained two raw material slurries of different
material types are mixed to obtain a ceramic raw material slurry. This is said to
improve energy efficiency and thereby productivity. In addition,
WO97/26223 (PLT 2) discloses that a raw material with small deformation due to firing can be
obtained by determining the particle size of a specific raw material (quartz) while
determining the average particle size of the entire raw materials.
[Citation List]
[Patent Literature]
[Summary of the Invention]
[0006] We have found that by varying the degree of fineness of the same raw material, feldspar,
as a fusing material in greenware materials, a pottery greenware material with excellent
properties and characteristics can be obtained, and ceramics with high design quality,
i.e., complex or distinctive shapes, can be stably produced with high quality . Furthermore,
we have found that by controlling the relationship between the particle size of the
entire greenware material and the particle size of the feldspar, a greenware material
with even better properties and characteristics can be obtained. The present invention
is based on these findings.
[0007] Therefore, an object of the present invention is to provide a pottery greenware material
which is excellent in various properties and characteristics.
[0008] A pottery greenware material according to the present invention is a pottery greenware
material comprising at least a plastic raw material and feldspar, wherein the feldspar
comprises a first feldspar has an average particle size in the range of 5.0 to 20.0
µm and a second feldspar has an average particle size in the range of 2.0 to 4.0 µm,
the average particle size of the plastic raw material is in the range of 0.5 to 6.0
µm where the average particle size is the arithmetic mean of particle size and mass
distribution measured by a sedimentation method.
[0009] According to the present invention, a pottery greenware material having excellent
properties and characteristics can be obtained, and ceramics having high design quality,
i.e., complex or distinctive shapes, can be stably produced with high quality.
[DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS]
Definition
[0010] In the present invention, a "ceramic ware" means sanitary ware, tiles, and other
items that have a basic structure of a glaze layer on a ceramic base. In addition,
"sanitary ware" means ceramic products used in bathrooms, toilet spaces, dressing
rooms, washrooms, kitchens, etc. Specifically, it refers to toilet bowls, urinals,
toilet basins, toilet tanks, wash basins, hand basins, etc.
[0011] A "pottery greenware material" according to the present invention means a composition
capable of forming a base constituting the above-mentioned "ceramic ware" as a fired
body.
[0012] In the present invention, an "average particle size" of particles means the arithmetic
mean of particle size and mass distribution which are measured by a sedimentation
method. Furthermore, it is preferable that the measurement by the sedimentation method
is performed using an X-ray transmission type sedimentation method particle size distribution
measuring device, SediGraph, manufactured by Micromeritics , Inc., and the measurement
principle is basically the same, so differences due to the generation of the device
do not change the essence of the invention in the present invention.
Pottery greenware materials
[0013] The pottery greenware material according to the present invention comprises at least
a plastic raw material and feldspar. The feldspar further comprises at least a first
feldspar having an average particle size in the range of 5.0 to 20.0 µm and a second
feldspar having an average particle size in the range of 2.0 to 4.0 µm. Furthermore,
in the pottery greenware material according to the present invention, the average
particle size of the plastic raw material is in the range of 0.5 to 6.0 µm.
[0014] According to a preferred embodiment of the present invention, the average particle
size of the first feldspar is preferably in the range of 6.0 to 15.0 µm, and the average
particle size of the second feldspar is preferably in the range of 2.0 to 3.0 µm.
[0015] According to one embodiment of the present invention, the average particle size of
the plastic raw material is preferably in the range of 0.5 to 4.0 µm.
[0016] In the pottery greenware material of the present invention, the feldspar used as the
fusing material is composed of feldspars with different degrees of fineness as described
above, and the average particle size of the plastic raw material is controlled within
a specific range. When ceramic ware, particularly sanitary ware, is manufactured with
such a pottery greenware material of the present invention, complex or distinctive
shapes with rich designs can be stably realized with high quality.
In order to realize such high design quality of ceramic ware, it is important not only
that deformation during firing is small and the occurrence of cracks and fissures
is effectively suppressed, but also that deformation during the molding process is
small or easy to control. With the pottery greenware material of the present invention,
the above control can be easily performed not only during firing but also during molding
processing.
[0017] According to a preferred embodiment, the pottery greenware material of the present
invention has a shrink aspect ratio (height/width) during firing of 1.0 to 1.9, preferably
1.0 to 1.8, resulting in less occurrence of cracks and fissures and enabling the high
design quality of the ceramic to be realized.
[0018] Furthermore, the pottery greenware material according to the present invention can
produce high-quality ceramics at a firing temperature which is lower than the firing
temperature which is conventional and general. For example, the comparison with a
greenware material which is obtained without adjusting the particle size by dividing
the feldspar into the two, unlike the present invention, shows that ceramic ware having
similar or better quality can be obtained even at a lower firing temperature. As a
result, the use of the pottery greenware material according to the present invention
is also advantageous in terms of energy efficiency of the manufacturing process. The
pottery greenware material according to the present invention can be fired at a temperature
of preferably 1100 to 1200°C, more preferably 1130 to 1190°C.
[0019] The effect for lowering the firing temperature of feldspar as a fusing material is
ruled by its average particle size, and the firing temperature tends to decrease when
the average particle size is reduced, but the occurrence of cracks was observed when
the average particle size of feldspar was reduced.
In the pottery greenware material of the present invention, it is considered that by
adjusting the average particle size of feldspar and plastic raw material, it is possible
to effectively suppress the occurrence of cracks and to fire at a relatively low temperature.
[0020] Furthermore, the control of the particle size of the feldspar and plastic raw materials
in the present invention is applicable to a wide range of pottery greenware materials,
and is less subject to regional restrictions in terms of raw material procurement.
This is another advantage of the pottery greenware material according to the present
invention.
[0021] According to a preferred embodiment of the present invention, the average particle
size of all the feldspars is preferably in the range of 2.0 to 8.0 µm, more preferably
in the range of 2.0 to 6.0 µm.
[0022] According to one embodiment of the present invention, the average particle size of
the plastic raw material is made smaller than the average particle size of all the
feldspars, which can further suppress the occurrence of cracks in the pottery.
[0023] A preferred combination of the pottery greenware material of the present invention
includes a plastic raw material having an average particle size in the range of 0.5
to 6.0 µm, a first feldspar having an average particle size in the range of 5.0 to
20.0 µm, and a second feldspar having an average particle size in the range of 2.0
to 4.0 µm, and the average particle sizes of all the feldspars are in the range of
2.0 to 8.0 µm.
[0024] Furthermore, a more preferred combination includes a plastic raw material having
an average particle size in the range of 0.5 to 4.0 µm, a first feldspar having an
average particle size in the range of 6.0 to 10.0 µm, and a second feldspar having
an average particle size in the range of 2.0 to 3.0 µm, and the average particle size
of all the feldspars is in the range of 2.0 to 6.0 µm.
[0025] In the present invention, the mixing ratio of the first feldspar to the second feldspar
may be appropriately determined taking into consideration the average particle sizes
of all of the feldspars described above, but it is preferable that the mixing ratio
of the first feldspar is greater than the mixing ratio of the second feldspar.
Raw materials
[0026] Examples of the plastic raw materials contained in the pottery greenware material
according to the present invention include clay minerals such as kaolinite, halloysite,
metahalloysite, dickite, and pyrophyllite, and clay-like micas such as sericite and
illite. These minerals are abundantly contained in clay raw materials such as frog-eye
clay, kibushi clay, kaolin, ball clay, and china clay, and in various pottery stones.
Kaolinite, halloysite, and sericite are preferred as these clays. These clay minerals
melt during firing to form a glass phase, but some may remain unmelted as crystals.
According to one embodiment, the pottery greenware material according to the present
invention may contain pottery stone. For example, sericite pottery stone, kaolin pottery
stone, etc. can be used as the pottery stone.
[0027] The feldspar contained in the pottery greenware material according to the present
invention may include feldspar minerals such as potassium feldspar, sodalite, and
anorthite, nephelite, natural glass, frit, and the like.
[0028] The pottery greenware material according to the present invention can be made mainly
from stone-based raw materials, such as pottery stone, feldspar, dolomite, etc. Dolomite
can lower the firing temperature, which reduces energy costs and allows for economical
production of pottery products, and is suitable for industrial and mass production.
Manufacturing of pottery greenware materials
[0029] The pottery greenware material according to the present invention can be produced
by grinding and mixing the raw materials above. Specifically, the plastic raw material,
the first feldspar, and the second feldspar are each ground to particles having a
desired average particle size, and then mixed in a mixing ratio that results in a
desired composition. The desired average particle size may be controlled by the grinding
condition time, or may be performed using a classifier such as a sieve. As a classification
method, known methods using a vibrating sieve, an ultrasonic sieve, various screeners,
a centrifuge, etc. can be used.
[0030] As the grainding method, a known method using a ball mill, a planetary ball mill,
a jet mill, or the like can be used.
Composition of the substrate material
[0031] The pottery greenware material according to the present invention preferably has
as an overall chemical composition at the time of firing 50-75 wt% of SiO
2 , 17-40 wt% of Al
2O
3 , and 1-10 wt% of K
2O+Na
2O. The first greenware material preferably contains 25-70 wt% of glass phase and 75-30
wt% of crystal phase. The chemical composition of the main components constituting
the glass phase is preferably 50-80 wt% of SiO
2, 10-40 wt% of Al
2O
3, and 4-12 wt % of KO+NaO, with the entire glass phase being 100 % .
Manufacturing of greenware material
[0032] The production of pottery greenware from the pottery greenware material according
to the present invention can be carried out as follows. First, the pottery greenware
material according to the present invention is mixed with water to prepare a greenware
slurry. The greenware slurry is adjusted by its concentration and, in some cases,
the amount of a deflocculating agent, etc., so that the viscosity of the greenware
slurry is preferably about 100 to 1000 cP, which is suitable for slip casting. The
deflocculating agent is a material that makes the greenware material easy to disperse
in water, and water glass, sodium carbonate, sodium humate, sodium polyacrylate, acrylic
acid oligomer ammonium salt, etc. can be used. In addition, when strength of the molded
body is particularly required, a binder can be added to the slurry, and binders such
as various emulsion-based binders, sodium carboxymethylcellulose, polyvinyl alcohol,
dextrin, gum arabic, gum tragacanth, methylcellulose, peptone, water-soluble starch,
and colloidal silica can be used.
[0033] Then, the greenware slurry is molded into a molded body. For example, in the case
of a toilet bowl, the greenware slurry is molded into molded bodies for the body and
rim of the toilet bowl. As a molding method, for example, casting is used. As casting,
gypsum casting and pressure casting are preferable. The molded bodies thus obtained
are optionally joined. As a method of joining, a plurality of molded bodies are joined
using an adhesive slip. For example, in the case of a toilet bowl, the molded bodies
for the body and rim are joined using an adhesive slip.
[0034] Next, the joined molded body is dried. A glaze slip prepared separately is applied
onto the molded body to form a glaze layer, and then the molded body is fired. The
firing is preferably performed at a temperature of 1100 to 1200°C, and more preferably
at a temperature of 1130 to 1190°C.
Glaze
[0035] In the present invention, various glazes can be used as a glaze for forming a glaze
layer of the ceramic ware. For example, a mixture of natural mineral particles such
as silica sand, feldspar, limestone, etc. and/or amorphous glaze containing an opacifier
and further adding a pigment can be used. Examples of opacifiers include zircon and
tin oxide. The composition of the glaze is, for example, SiO
2: 52 to 80 parts by weight, Al
2O
3: 5 to 14 parts by weight, CaO: 6 to 17 parts by weight, MgO: 0.5 to 4.0 parts by
weight, ZnO: 3 to 11 parts by weight, K
2O: 1 to 5 parts by weight, Na
2O: 0.5 to 2.5 parts by weight, an opacifier: 0.1 to 15 parts by weight, a pigment:
0.001 to 20 parts by weight. The glaze may further contain a paste, a dispersant,
a preservative, an antibacterial agent, etc. Examples of pigments include cobalt compounds
and iron compounds. The amorphous glaze refers to a glaze obtained by melting a glaze
raw material consisting of a mixture of the above-mentioned natural mineral particles
at a high temperature and vitrifying it, and for example, a frit glaze can be suitably
used.
[EXAMPLES]
[0036] The present invention will be further illustrated by the following examples, but
the present invention is not limited to these examples.
Measurement of average particle size
[0037] The average particle size of the greenware materials in the following Examples and
Comparative Examples was measured using a Micromeritics SediGraph (SediGraphlll 5120).
The measurement conditions were as follows: a sample was dispersed in an aqueous hexametaphosphoric
acid solution (0.05%) at a weight concentration of 6.1%, the measurement range was
250µm to 0.1µm, and the analysis time was 58 minutes.
Raw material grinding
[0038] As greenware materials, pottery stone, China clay, ball clay, feldspar, silica sand,
and dolomite were prepared. A portion of the feldspar was further pulverized in a
ball mill to obtain first feldspar A to C and second feldspar A and B. The particle
sizes of these raw materials were as shown in Table 1 below.
Table 1
| |
Average particle size (µm) |
| Pottery stone |
2.6 |
| China clay |
2.6 |
| Ball clay |
0.4 |
| 1st feldspar A |
7.6 |
| 1st feldspar B |
9.0 |
| 1st feldspar C |
17.8 |
| 2nd feldspar A |
2.4 |
| 2nd feldspar B |
2.1 |
| Silica sand |
6.4 |
| Dolomite |
2.5 |
Mixing of raw materials: Preparation of pottery greenware material
[0039] The raw materials prepared as described above were mixed in the ratio shown in Table
2 below to obtain pottery greenware materials as Examples 1 to 5 and Comparative Examples
1 to 6.

[0040] The average particle size of each raw material of the pottery greenware materials
in these Examples and Comparative Examples is summarized in Table 3 below.

Preparation of greenware slurry, greenware materials and ceramic ware
[0041] To the greenware materials of the examples and comparative examples water was added,
and the mixture was stirred to prepare a greenware slurry. This greenware slurry was
cast into a plaster mold to obtain a molded body. Then, the molded body was spray-coated
with glaze, and the firing temperature was set to the temperature shown in Table 4
below, and the ceramic ware was obtained by firing for 18 hours.
Evaluation
[0042] The pottery greenware material according to the present invention, the greenware
and ceramics obtained therefrom were evaluated as follows.
Greenware thickness
[0043] In order to evaluate the adhesion properties of the greenware slurry, the thickness
of the greenware slurry after pressure filtration was measured. In particular, a filter
paper was laid on the bottom plate of a container, and 300 ml of the greenware slurry
was poured from the injection port. The injection port was plugged, and the greenware
slurry was inlaid by filtering the container with an air pressure of 294 kPa for 20
minutes. After the pressurization was completed, the air pressure in the container
was released, and the mud was drained from the injection port, and then the injection
port was plugged again and the greenware slurry was compacted with an air pressure
of 196 kPa for 5 minutes. The greenware slurry was taken out of the container, and
the thickness was measured, and the obtained value was taken as the baroid thickness
(mm/20 min).
Particle Packing Ratio
[0044] The particle packing ratio was calculated from the bulk density and true density
obtained by the Archimedes method. In particular, a molded body without irregularities
was obtained by slip casting using the greenware slurry obtained in the same manner
as in the preparation of the greenware slurry. The molded body was thoroughly dried
and the dry mass (W1) was measured. Next, the molded body was placed in a vacuum desiccator
and kept in vacuum for 1 hour, and then, without lowering the vacuum, kerosene was
added to the desiccator until the molded body was completely immersed, and the sample
was suspended in the oil by a thin wire and the mass in the oil (W2) was measured.
Next, the excess oil on the surface of the sample was wiped off with gauze, and the
oil-containing mass in the air (W3) was measured. The bulk density (ρb), true specific
gravity (ρ), and particle packing ratio were calculated from the following formulas.

[0045] In the above, ρ0 is the specific gravity of kerosene.
Firing shrinkage
[0046] Using a greenware slurry obtained in the same manner in the preparation of the greenware
slurry above, a molded body having a width of 30 mm, a thickness of 12 mm, and a length
of 260 mm was obtained by slip casting, and this was used as a test piece. A mark
was made at a length of 150 mm on the test piece, and the test piece was fired. The
percentage obtained by dividing the change in the length of the mark before and after
firing by 150 mm was calculated as the firing shrinkage rate.
Firing aspect ratio
[0047] According to the following formula, the ratio of the vertical shrinkage to the horizontal
shrinkage during firing was defined as the firing aspect ratio, and the horizontal
shrinkage rate and the vertical shrinkage rate were calculated as follows.
Firing aspect ratio = Vertical shrinkage rate (when fired) (%) / Horizontal shrinkage
rate (when fired) (%)
- Horizontal shrinkage rate: The same as the "firing shrinkage" above, and the value
obtained above was used.
- Vertical shrinkage rate: A cylindrical molded body having a thickness of 12 mm and
a diameter of 96 mm was obtained from the above greenware slurry, and this was used
as a test piece. The dried test piece was fired, and its thickness was measured at
six points before and after firing using a micrometer. The measurement points were
the same before and after firing. The average value of the six measured values was
calculated and used as the vertical shrinkage.
Softening deformation amount
[0048] Using a greenware slurry obtained in the same manner as in the preparation of the
greenware slurry above, a molded body having a width of 30 mm, a thickness of 12 mm,
and a length of 260 mm was obtained by slip casting, and this was used as a test piece.
The test piece was sintered while being supported by a support with a span of 200
mm. The deflection amount and the thickness of the test piece after sintering were
measured. Since the deflection amount is inversely proportional to the square of the
thickness of the test piece after firing, the deflection amount at a thickness of
10 mm was calculated by the following formula, and this was used as the softening
deformation amount.
Softening deformation amount = measured deflection amount × (thickness of test piece
after firing) 2/102

Cracks in round bars
[0049] Using a greenware slurry obtained in the same manner as in the preparation of the
greenware slurry above, a cylindrical molded body having a diameter of 14 mm and a
length of 160 mm was obtained by slip casting, which was used as a test piece. After
firing the test piece, the state of cracks that had occurred was visually observed
and rated on a 5-point scale (none, almost none, slightly present, present, severely
present). For the inside of the test piece that could not be visually observed from
the outside, the test piece was split and the state of cracks was visually observed.
[0050] The results are shown in Table 4 below.
